Muhammad Bilal Hanif , Sajid Rauf , Muhammad Zubair Khan , Zaheer Ud Din Babar , Osama Gohar , Mohsin Saleem , Kun Zheng , Iftikhar Hussain , Bin Lin , Dmitry Medvedev , Cheng-Xin Li , Martin Motola
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SOECs exhibit numerous advantages over low-temperature electrolysis technologies, including a wide potential performance range, high conversion efficiency, excellent selectivity, and the ability to provide co-electrolysis of H<sub>2</sub>O and CO<sub>2</sub>, supporting hydrogen energy strategies and carbon emission reduction programs. However, SOECs suffer from unsatisfactory long-term stability, which is caused by a number of microstructurally, chemically, and electrically related factors. In order to address these issues, we present the current review article, which provides a detailed description of the chemical and electrochemical phenomena that occur in SOECs during their real operation, in relation to both internal factors (the composition of functional materials) and external aspects (gas compositions, temperature, and applied potential). An in-depth analysis of these interrelationships enables the rational selection of materials and optimization of SOEC operating conditions. Various strategies for the optimal functioning of fuel electrodes, such as doping, in-situ exsolution, and catalytic advancements, are explored. For oxygen electrodes, performance optimization strategies including the development of novel perovskite materials with tailored surface properties and the incorporation of mixed ionic-electronic conductors to facilitate enhanced oxygen ion transport and electrochemical activity, are comprehensively summarized. Moreover, a particular focus of this review is on the surface segregation behavior of perovskite electrodes, a critical aspect influencing SOEC performance and stability. Recent innovations in SOECs development aimed at mitigating surface segregation, such as doping strategies, surface treatments, and the development of novel perovskite compositions with enhanced stability, are discussed in detail for the first time. Consequently, this work is regarded as a valuable reference in the field of SOECs, particularly in relation to energy materials, degradation processes, solid state ionics, and electrochemistry. By employing these innovative strategies, the long-term stability and efficiency of SOECs can be significantly enhanced, making them more viable for large-scale hydrogen production and carbon reduction initiatives.</div></div>","PeriodicalId":386,"journal":{"name":"Materials Science and Engineering: R: Reports","volume":"161 ","pages":"Article 100864"},"PeriodicalIF":31.6000,"publicationDate":"2024-10-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Innovative advances and challenges in solid oxide electrolysis cells: Exploring surface segregation dynamics in perovskite electrodes\",\"authors\":\"Muhammad Bilal Hanif , Sajid Rauf , Muhammad Zubair Khan , Zaheer Ud Din Babar , Osama Gohar , Mohsin Saleem , Kun Zheng , Iftikhar Hussain , Bin Lin , Dmitry Medvedev , Cheng-Xin Li , Martin Motola\",\"doi\":\"10.1016/j.mser.2024.100864\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>Hydrogen generation by means of environmentally friendly approaches is of paramount importance in the field of contemporary science and technology. 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引用次数: 0
摘要
在当代科学技术领域,以环保方式制氢至关重要。固体氧化物电解池(SOECs)代表了高温制氢的发展方向,可在 400-800 °C 的温度下实现高效的电能到化学能的转换。与低温电解技术相比,固体氧化物电解池具有众多优势,包括潜在性能范围广、转换效率高、选择性好,以及能够实现 H2O 和 CO2 的共电解,从而支持氢能源战略和碳减排计划。然而,SOEC 的长期稳定性并不令人满意,这是由一系列微结构、化学和电气相关因素造成的。为了解决这些问题,我们撰写了这篇综述文章,详细描述了 SOEC 在实际运行过程中发生的化学和电化学现象,这些现象与内部因素(功能材料的组成)和外部因素(气体成分、温度和应用电位)都有关系。通过深入分析这些相互关系,可以合理选择材料并优化 SOEC 的运行条件。研究还探讨了优化燃料电极功能的各种策略,如掺杂、原位外溶解和催化进步。对于氧电极,全面总结了性能优化策略,包括开发具有定制表面特性的新型过氧化物材料,以及加入混合离子电子导体以促进增强氧离子传输和电化学活性。此外,本综述还特别关注了包晶石电极的表面偏析行为,这是影响 SOEC 性能和稳定性的一个关键方面。本文首次详细讨论了 SOECs 开发过程中旨在减轻表面偏析的最新创新成果,如掺杂策略、表面处理以及具有更高稳定性的新型包晶石成分的开发。因此,这部著作被视为 SOECs 领域的重要参考文献,特别是在能源材料、降解过程、固态离子学和电化学方面。通过采用这些创新策略,SOECs 的长期稳定性和效率可以得到显著提高,使其在大规模制氢和碳减排行动中更加可行。
Innovative advances and challenges in solid oxide electrolysis cells: Exploring surface segregation dynamics in perovskite electrodes
Hydrogen generation by means of environmentally friendly approaches is of paramount importance in the field of contemporary science and technology. Solid oxide electrolysis cells (SOECs) represent a high-temperature trajectory of H2 production, offering highly efficient electrical-to-chemical energy conversion at 400–800 °C. SOECs exhibit numerous advantages over low-temperature electrolysis technologies, including a wide potential performance range, high conversion efficiency, excellent selectivity, and the ability to provide co-electrolysis of H2O and CO2, supporting hydrogen energy strategies and carbon emission reduction programs. However, SOECs suffer from unsatisfactory long-term stability, which is caused by a number of microstructurally, chemically, and electrically related factors. In order to address these issues, we present the current review article, which provides a detailed description of the chemical and electrochemical phenomena that occur in SOECs during their real operation, in relation to both internal factors (the composition of functional materials) and external aspects (gas compositions, temperature, and applied potential). An in-depth analysis of these interrelationships enables the rational selection of materials and optimization of SOEC operating conditions. Various strategies for the optimal functioning of fuel electrodes, such as doping, in-situ exsolution, and catalytic advancements, are explored. For oxygen electrodes, performance optimization strategies including the development of novel perovskite materials with tailored surface properties and the incorporation of mixed ionic-electronic conductors to facilitate enhanced oxygen ion transport and electrochemical activity, are comprehensively summarized. Moreover, a particular focus of this review is on the surface segregation behavior of perovskite electrodes, a critical aspect influencing SOEC performance and stability. Recent innovations in SOECs development aimed at mitigating surface segregation, such as doping strategies, surface treatments, and the development of novel perovskite compositions with enhanced stability, are discussed in detail for the first time. Consequently, this work is regarded as a valuable reference in the field of SOECs, particularly in relation to energy materials, degradation processes, solid state ionics, and electrochemistry. By employing these innovative strategies, the long-term stability and efficiency of SOECs can be significantly enhanced, making them more viable for large-scale hydrogen production and carbon reduction initiatives.
期刊介绍:
Materials Science & Engineering R: Reports is a journal that covers a wide range of topics in the field of materials science and engineering. It publishes both experimental and theoretical research papers, providing background information and critical assessments on various topics. The journal aims to publish high-quality and novel research papers and reviews.
The subject areas covered by the journal include Materials Science (General), Electronic Materials, Optical Materials, and Magnetic Materials. In addition to regular issues, the journal also publishes special issues on key themes in the field of materials science, including Energy Materials, Materials for Health, Materials Discovery, Innovation for High Value Manufacturing, and Sustainable Materials development.